(19)
(11) EP 0 320 691 A2

(12) EUROPEAN PATENT APPLICATION

(43) Date of publication:
21.06.1989 Bulletin 1989/25

(21) Application number: 88119854.3

(22) Date of filing: 29.11.1988
(51) International Patent Classification (IPC)4G03C 7/32, G03C 7/36
(84) Designated Contracting States:
BE DE FR GB

(30) Priority: 17.12.1987 IT 2305587

(71) Applicant: MINNESOTA MINING AND MANUFACTURING COMPANY
St. Paul, Minnesota 55133-3427 (US)

(72) Inventor:
  • Bucci, Marco
    I-17016 Ferrania/Savona (IT)

(74) Representative: Checcacci, Giorgio 
PORTA, CHECCACCI & BOTTI s.r.l. Viale Sabotino, 19/2
I-20135 Milano
I-20135 Milano (IT)


(56) References cited: : 
   
       


    (54) Silver halide color photographic light-sensitive material


    (57) Silver halide color photographic light-sensitive material which comprises a support having thereon at least one silver halide emulsion layer containing a diketomethylene yellow dye forming coupler having bonded, directly or through a connecting group, to the coupling active position a group which provides a compound having a development inhibiting property when the group is released from the coupler active position upon the color development reaction, wherein said group is a 4,7-dihalogen-2-benzotriazolyl group.


    Description

    FIELD OF THE INVENTION



    [0001] The present invention relates to a silver halide color photographic light-sensitive material contai­ning a photographic coupler and, more particularly, a DIR (Development Inhibitor Releasing) coupler capable of releasing a development inhibiting compound upon reaction with the oxidation product of a developing agent.

    BACKGROUND OF THE ART



    [0002] It is well known that color photographic light-­sensitive materials, using the subtractive process for color reproduction, comprise silver halide emul­sion layers selectively sensitive to blue, green and red light and associated with yellow, magenta and cyan dye forming couplers which form (upon reaction with an oxidized primary amine type color developing agent) the complementary color thereof. For example, an acylacetanilide type coupler is used to form a yellow color image; a pyrazolone, pyrazolotriazole, cyanacetophenone or indazolone type coupler is used to form a magenta color image; and a phenol type, such as a phenol or naphthol, coupler is used to form a cyan color image.

    [0003] Usually, the color photographic light-sensitive materials comprise non-diffusible couplers incorpora­ted independently in each of the light-sensitive la­yers of the material (incorporated coupler materi­als). Therefore, a color photographic light-sensitive material usually comprises a blue-sensitive silver halide emulsion layer (or layers) which contains a yellow coupler and which is mainly sensitive to blue light (substantially to wavelenghts less than about 500 nm), a green-sensitive silver halide emulsion layer (or layers) which contains a magenta coupler and which is mainly sensitive to green light (sub­stantially to wavelengths of about 500 to 600 nm) and a red-sensitive silver halide emulsion layer (or lay­ers) which contains a cyan coupler and which is main­ly sensitive to red light (substantially to wave-­lengths longer than about 590 nm).

    [0004] It is also known to incorporate into a light-­sensitive color photographic material a compound ca­pable of releasing a development inhibitor during development upon reaction with the oxidation product of a color developing agent. Typical examples of said compounds are the DIR (Development Inhibitor Releas­ing) couplers having a group having a development inhibiting property when released from the coupler introduced at the coupling position of the coupler. Examples of DIR couplers are described by C.R. Barr, J.R. Thirtle and P.W. Wittum, Photographic Science and Eng., vol. 13. pp 74-80 (1969) and ibid. pp 214-217 (1969) or in US Pat. Nos. 3,227,554, 3,615,506, 3,617,291, 3,701,783, 3,933,500 and 4,149,886.

    [0005] The purpose of DIR couplers is to reduce graini­nes and improve sharpness of the image due to intra­layer or intraimage effects (that is in the same lay­ers or the same dye image) and improve color repro­duction due to interlayer or interimage effects (that is in different layers or different dye images). Usu­ally, however, the DIR coupler causes, in the light-­sensitive silver halide multi layer color element in which is used, interimage effects mainly in the high-density areas of the negative image, while it is often desirable to obtain interimage effects in the low-density areas which much more affects image char­acteristics such as color saturation and brilliance.

    [0006] Therefore, in order to more effectively use the DIR couplers, it is desirable to develop novel DIR couplers which improve interimage effects of light-­sensitive silver halide multilayer color elements.

    [0007] Several substituents on the phenyl ring of the 2-benzotriazolyl development inhibiting group of DIR couplers have been described, for example in US pat. No. 3,617,291, 4,145,219 and 4,477,563, in GB Pat. Appln. 2,010,818, in EP Pat. Appln. 115,302 and 101,621. However, there is nothing in the cited ref­erences which would suggest that appropriate selec­tion and combination of substituents on the phenyl ring of a 2-benzotriazolyl development inhibitor group would give the aforementioned desired improve­ments in interimage effects.

    SUMMARY OF THE INVENTION



    [0008] The present invention relates to a silver halide color photographic light-sensitive material which comprises a support having thereon at least one sil­ver halide emulsion layer containing a diketomethyle­ne yellow dye forming coupler having bonded, directly or through a connecting group, to the coupling active position a group which provides a compound having a development inhibiting property when the group is re­leased from the coupler active position upon the co­lor development reaction, wherein said group is a 4,7-dihalogen-2-benzotriazolyl group.

    [0009] Said silver halide color light-sensitive materi­al containing the novel yellow dye forming DIR coupler provides, upon exposure and development, color images of improved image quality.

    DETAILED DESCRIPTION OF THE INVENTION



    [0010] The photographic DIR couplers according to the present invention are characterized by having a 4,7-­dihalogen-2-benzotriazolyl group bonded, directly or through a connecting group, to the active methylene group (coupling active position) of a yellow dye forming coupler through the 2-nitrogen atom of said group, the remaining 5 and 6 positions of said group being substituted or unsubstituted.

    [0011] The DIR couplers according to the present invention comprise materials having the common nucleus of formula (I):

    wherein COUP represents a yellow dye forming coupler residue (with an available bond at the reactive position) which is bonded, directly or through a connecting group, to the 2-nitrogen atom, R₁ and R₂ may be the same or different and each represents a halogen atom (chlorine, bromine, iodine and fluorine), L represents a connecting group and n represents 0 or 1.

    [0012] In particular, the DIR couplers according to the present invention can be represented by the formula (II):

    wherein COUP represents a yellow dye forming coupler residue; R₁ and R₂, the same or different, each rep­resents a halogen atom (chlorine, bromine, iodine and fluorine); R₃ and R₄, the same or different, each represents a hydrogen atom, a halogen atom (chlorine, bromine, iodine and fluorine), an amino group, an alkyl group having 1 to 4 carbon atoms (methyl, eth­yl, buthyl, chloromethyl, trifluoromethyl, 2-hydroxy­ethyl, etc.), an alkoxy group having 1 to 4 carbon atoms (methoxy, chloromethoxy, ethoxy, buthoxy, etc.), a hydroxy group, a cyano group, an aryloxy group (phenoxy, p-methoxyphenoxy, etc.), an acyloxy group (acyloxy, benzoyloxy, etc.), an acyl group (acyl, benzoyl, etc.), an alkoxycarbonyl group (meth­oxycarbonyl, butyloxycarbonyl, etc.), an aryloxycar­bonyl group (benzoxycarbonyl, etc.), an acylamino group (acetamido, benzamido, etc.), an alkylsulphonyl group (methylsulfonyl, chloromethylsulfonyl, etc.), an arylsulphonyl group (phenylsulfonyl, naphthyl­sulfonyl, etc.), an alkoxysulphonyl group (ethoxy­sulfonyl, butoxysulfonyl, etc.), an aryloxysulphonyl group (phenoxysulfonyl, 2-methoxyphenoxysulfonyl, etc.) or an ureido group (phenylureido, butaneureido, etc). When the term "group" is used to describe a chemical compound or substituent, the described chemical material includes the basic group and that group with conventional substitution. Where the term "moiety" is used to describe a chemical compound or substituent only an unsubstituted chemical material is intended to be included. For example, "alkyl group" includes not only such alkyl moieties as methyl, ethyl, octyl, stearyl, etc., but also such moieties bearing substituent groups such as halogen, cyano, hydroxyl, nitro, amine, carboxylate, etc. On the other hand, "alkyl moiety" includes only methyl, ethyl, octyl, stearyl, cyanohexyl, etc.

    [0013] The 4,7-dihalogen-2-benzotriazolyl group at­tached to the coupling active position of a diketo­methylene yellow dye forming coupler proved to give unique results in terms of image quality.

    [0014] With the reference to the diketomethylene yellow dye forming coupler residue represented by COUP abo­ve, any residue of diketomethylene yellow dye forming coupler known in the art may be used. By the term "residue" is meant the substantive portion of the coupler, exclusive of a splitting-off or leaving group attached at the coupling active position. Exam­ples of diketomethylene yellow dye forming couplers include pivaloylacetanilide type couplers, benzoyl­acetanilide type couplers, malondiester type cou­plers, malondiamide type couplers, dibenzoylmethane type couplers, malonester monoamide type couplers, benzothiazolylacetate type couplers, benzoxazolyl­acetamide type couplers, benzoxazolylacetate type couplers, benzimidazolylacetamide type couplers or benzimidazolylacetate type couplers, hetero ring sub­stituted acetamide or hetero ring substituted acetate type couplers as described in US Pat. No. 3,841,880, acylacetamide type couplers as described in US Pat. No. 3,770,446, GB Pat. No. 1,459,171, DE Pat. Appln. No. 2,503,099, JA Pat. Appln. No. 139738/75 and Re­search Disclosure No. 15737, a heterocyclic type cou­pler as described in US Pat. No. 4,046,574 or the like.

    [0015] Preferred examples of yellow dye forming DIR couplers according to the present invention are rep­resented by the general formula (III)

    wherein
    R₁ and R₂ each represents a halogen atom,
    R₃ and R₄ each represents a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above,
    R₅ represents an alkyl group or an aryl group,
    R₆ represents an halogen atom, an alkoxy group or an alkyl group and
    Ball is an hydrophobic ballasting group.

    [0016] In the formula (III) above, the alkyl group re­presented by R₅ has preferably from 3 to 8 carbon atoms and more preferably is a branched chain alkyl group (such as, for example, an isopropyl group, a tert-butyl group or a tert-amyl group), and the aryl group represented by R₅ is preferably a phenyl group optionally substituted by alkyl or alkoxy groups hav­ing 1 to 5 carbon atoms (for example, a 2- or 4-­alkyl-phenyl group such as a 2-methylphenyl group, or a 2- or 4-alkoxyphenyl group such as a 2-methoxyphen­yl group, a 4-isopropoxyphenyl group or a 2-butoxy­phenyl group). R₆ represents an halogen atom (such as chlorine) or an alkyl or alkoxy group having 1 to 4 carbon atoms (such as methyl, ethyl, propyl, isoproyl, n-butyl, tert-butyl, methoxy, ethoxy, propoxy, isopropoxy, n-butoxy and tert-butoxy groups).

    [0017] The ballasting group (Ball) of the formula (III) above acts as a "ballast" which can maintain the DIR coupler in a specific layer so as to substantially prevent said coupler from diffusing to any other lay­er in a multilayer color photographic element. The group has a sufficient bulkiness to complete that purpose. Usually a group having a hydrophobic group of 8 to 32 carbon atoms is introduced in the coupler molecule as ballasting group. Such group can be bond­ed to the coupler molecule directly or through an amino, ether, carbonamido, sulfonamido, ureido, ester, imido, carbamoyl, sulfamoyl, phenylene, etc., bond. Specific examples of ballasting groups are il­lustrated in US Pat. No. 4,009,083, in European Pat. Nos. 87,930, 84,100, 87,931, 73,146, and 88,563, in German Pat. Nos. 3,300,412 and 3,315,012, in Japanese Pat. Nos. 58/33248, 58/33250, 58/31334, 58/106539. Preferably, such ballasting groups comprise alkyl chains, the total carbon atoms of which are no more than 20.

    [0018] Still preferred examples of yellow dye forming DIR couplers are represented by the general formula (IV) or (V):

    wherein
    R₁ and R₂ each represents a halogen atom,
    R₃ and R₄ each represents a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above,
    R₇ represents a branched chain alkyl group, prefera­bly a branched chain alkyl group having 3 to 8 carbon atoms (such as, for example, a isopropyl group, an isobutyl group, a tert-butyl group or a tert-amyl group),
    R₈ represents an alkyl group, preferably an alkyl group having 8 to 22 carbon atoms (such as, for exam­ple, a dodecyl group, a tetradecyl group, a hexadecyl group or an octadecyl group), a phenoxyalkyl group, preferably a phenoxyalkyl group having 10 to 32 car­bon atoms (such as, for example, a gamma-(2,4-di-­tert-amylphenoxy) propyl group), an alkoxyphenyl group, preferably an alkoxyphenyl group having 10 to 32 carbon atoms, or an aralkyl group, preferably an aralkyl group having 10 to 32 carbon atoms.

    [0019] More preferred examples of diketomethylene yel­low dye forming DIR couplers according to the present invention are represented by the general formula (VI)

    wherein
    R₁ and R₂ each represents a halogen atom,
    R₃ and R₄ each represents a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above,
    R₉ represents an alkyl group, an aryl group or a -NR₁₁R₁₂ group wherein R₁₁ represents a hydrogen atom or an alkyl group and R₁₂ represents an alkyl group or an aryl group, and
    R₁₀ represents an alkyl group or an aryl group.

    [0020] In the formula (VI) above, the alkyl group rep­resented by R₉, R₁₀ and R₁₂ has preferably from 1 to 18 carbon atoms and may be substituted or unsubstitu­ted. Preferred examples of substituents of the alkyl group include an alkoxy group, an aryloxy group, a cyano, an amino group, an acylamino group, a halogen atom, an hydroxy group, a carboxy group, a sulfo group, an heterocyclic group, etc. Practical examples of useful alkyl groups are an isopropyl group, an isobutyl group, a tertbutyl group, an isoamyl group, a tert-amyl group, a 1,1-dimethylbutyl group, a 1,1-­dimethylhexyl group, a 1,1-diethylhexyl group, a 1,1-dimethyl-1-methoxyphenoxymethyl group, a 1,1-di­methyl-1-ethylthiomethyl group, a dodecyl group, a hexadecyl group, an octadecyl group, a cyclohexyl group, a 2-methoxyisopropyl group, a 2-phenoxyiso­propyl group, an alpha-aminoisopropyl group, an alpha-succinimidoisopropyl group, etc.

    [0021] The aryl group represented by R₉, R₁₀ and R₁₂ has preferably from 6 to 35 total carbon atoms and includes in particular a substituted phenyl group and an unsubstituted phenyl group. Preferred examples of substituents of the aryl group include a halogen at­om, a nitro group, a cyano group, a thiocyano group, a hydroxy group, an alkoxy group (preferably having 1 to 15 carbon atoms, such as methoxy, isopropoxy, octyloxy, etc.), an aryloxy group (such as phenoxy, nitrophenoxy, etc.), an alkyl group (preferably hav­ing 1 to 15 carbon atoms, such as methyl, ethyl, dodecyl, etc.),an alkenyl group (preferably having 1 to 15 carbon atoms, such as allyl), an aryl group (preferably having 6 to 10 carbon atoms, such as phenyl, tolyl, etc.), an amino group (e.g. an unsub­stituted amino group or an alkylamino group having 1 to 15 carbon atoms such as diethylamino, octylamino, etc.), a carboxy group, an acyl group (preferably having 2 to 16 carbon atoms such as acetyl, decanoyl, etc.), an alkoxycarbonyl group (preferably having the alkyl moiety of 1 to 20 carbon atoms, such as methoxycarbonyl, butoxycarbonyl, octyloxycarbonyl, dodecyloxycarbonyl, 2-methoxyethoxycarbonyl, etc.), an aryloxycarbonyl group (preferably having the aryl moiety of 6 to 20 carbon atoms, such as phenoxycar­bonyl, tolyloxycarbonyl, tolyoxycarbonyl, etc.), a carbamoyl group (such as ethylcarbamoyl, octylcar­bamoyl, etc.), an acylamino group (preferably having 2 to 21 carbon atoms, such as acetamido, octanamido, 2,4-di-tert-pentylphenoxyacetamido, etc.), a sulfo group, an alkylsulfonyl group (preferably having 1 to 15 carbon atoms, such as methylsulfonyl, octylsulfon­yl, etc.), an arylsulfonyl (preferably having 6 to 20 carbon atoms, such as phenylsulfonyl, octyloxyphenyl­sulfonyl, etc.), an alkoxysulfonyl (preferably having 1 to 15 carbon atoms, such as methoxysulfonyl, octyloxysulfonyl, etc.), an aryloxysulfonyl (prefer­ably having 6 to 20 carbon atoms, such as phenoxysul­fonyl, etc.), a sulfamoyl group (preferably having 1 to 15 carbon atoms, such as diethylsulfamoyl, octyl­sulfamoyl, methyloctadecylsulfamoyl, etc.), a sulfon­amino group (preferably having 1 to 15 carbon atoms, such as methylsulfonamino, octylsulfonamino, etc.) and the like.

    [0022] The alkyl group represented by R₁₁ in the for­mula (VI) above is preferably a lower alkyl group having 1 to 4 carbon atoms, such as a methyl group, an ethyl group, a n-propyl group, a iso-propyl group, a n-butyl group, a iso-butyl group or a tert-butyl group.

    [0023] The total number of carbon atoms of R₉, R₁₀, R₁₁ and R₁₂ in the formula (VI) above is preferably less than 60, more preferably less than 50.

    [0024] In another aspect of the present invention the 4,7-dihalogen-2-benzotriazolyl group is attached to the active methylene group (coupling active position) of a diketomethylene yellow dye forming coupler through connecting group L. In particular, said con­necting group L is a timing group joining the coupler and the 4,7-dihalogen-2-benzotriazolyl group, said timing group being displaced from said coupler on reaction with an oxidized color developing agent and the resulting timing and 4,7-dihalogen-2-benzotri­azolyl group being able to undergo a reaction (such as an intramolecular nucleophilic displacement reac­tion as described in US Pat. No. 4,248,962 or an electron transfer reaction along a conjugated system as described in US Pat. No. 4,409,323) to release the 4,7-dihalogen-2-benzotriazolyl group.

    [0025] Preferred examples of yellow dye forming DIR couplers according to said aspect of the present invention are represented by the general formula (VII)

    wherein COUP represents a yellow dye forming coupler residue, TIME is a timing group joining the coupler residue to the 4,7-dihalogen-2-benzotriazolyl group, R₁ and R₂ each represents a halogen atom and R₃ and R₄ each represent a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above.

    [0026] Examples of timing groups represented by TIME in formula (VII) include, for example, the following groups:

    wherein Z is oxygen or sulfur and is attached to cou­pler moiety COUP, n is 0 or 1, R₁₃ is hydrogen or an alkyl of 1 to 4 carbon atoms or an aryl of 6 to 10 carbon atoms, X is hydrogen, halogen, cyano, nitro, alkyl of 1 to 20 carbon atoms, alkoxy, alkoxycarbo­nyl, acylamino, aminocarbonyl, etc. as described in US Pat. No. 4,248,962,

    wherein the left hand side is attached to coupler moiety COUP, Z is oxygen or sulfur or

    R₁₄, R₁₅ and R₁₆ are individually hydrogen, alkyl or aryl groups, and Q is a 1,2- or 1,4-phenylene or naphthylene group, as described in US Pat. No. 4,409,323.

    [0027] Specific examples of yellow dye forming DIR cou­plers of the present invention are given below as illustrative examples.

























    [0028] The couplers of the present invention can be synthesized according to conventional ways as those for synthesizing DIR couplers. Typical examples of synthesis of the couplers of the present invention are given below.

    SYNTHESIS EXAMPLE 1


    Synthesis of coupler (1) : N-{2-chloro-5-[4-­(2, 4-ditert. amylphenoxy)-butyramido] }-phenyl-2-­(4,5,6,7-tetrachlorobenzotriazol-2-yl)-4, 4-dimeth­yl-3-oxo-pentanamide.



    [0029] To a solution of 6.05 g (0.01 mole) of N-{2-­chloro-5-[ 4-( 2,4-ditert.amylphenoxy)-butyramido]}-­phenyl-4,4-dimethyl-3-oxo-pentanamide in 80 ml chlo­roform was addded a solution of 30 ml of 0.3892 M bromine in chloroform cooling to 5°C. After stirring for 3 hours, the organic solution was washed with water, dried over sodium sulphate and concentrated to 30 ml under vacuum. This solution was added to a so­lution of 2.95 g (0.0115 mole) 4,5,6,7-tetrachloro­benzotriazole (prepared as described in Journal of American Chemical Society, Vol. 77, p. 5105, 1955) and 1.486 g (0.0115 mole) diisopropylethylamine in 40 ml chloroform. The mixture was stirred a night, washed with water, 1M hydrochloric acid, then water again, dried over sodium sulphate and dried under vacuum. The raw compound was crystallized from hepta­ne to give 5 g (60% yield) of Coupler 1.

    SYNTHESIS EXAMPLE 2


    Synthesis of coupler (3) : N-{2-chloro-5-[4-­(2, 4-ditert. amylphenoxy)-butyramido]}-phenyl-2-­(4,5,6,7-tetrabromobenzotriazol-2-yl)-4 4-dimethyl-­3-oxopentanamide.



    [0030] This compound was prepared according the pro­cedures described for coupler (1) using 4,5,6,7-­tetrabromobenzotriazole (prepared according to the same literature reference for 4,5,6,7-tetrachloro­benzotriazole) to give 7 g of coupler (3).

    SYNTHESIS EXAMPLE 3


    Synthesis of coupler (22) : Bis-{N-<2-chloro-5-­(1-dodecyloxycarbonyl)-ethyloxycarbonyl>}-2-(4,5,6,7-­tetrachlorobenzotriazol-2-yl)-malonodiamide.



    [0031] To a solution of 8.82 g (0.01 mole) bis-{N-<2-­chloro-5-(1-dodecyloxycarbonyl)-ethyloxycarbonyl>}-­malonodiamide in 80 ml chloroform was added a solu­tion of 30 ml of 0.3892 1M bromine in chloroform cooling to 5°C. After stirring for 3 hours, the or­ganic solution was washed with water, dried over so­dium sulphate and concentrated to 30 ml under vacuum. This solution was added to a solution of 2.95 g (0.0115 mole) 4,5,6,7-tetrachlorobenzotriazole and 1.486 g (0.0115 mole) diisopropylethylamine in 40 ml chloroform. The mixture was stirred a night, washed with water, 1 M hydrochloric acid, then water again, dried over sodium sulphate and dried under vacuum. The raw compound was crystallized from ethanol, then from methanol to give 5 g (45% yield) of Coupler 22.

    [0032] The structures of the above couplers were con­firmed by elemental analysis, IR spectra and ¹H and ¹³C spectra, especially to confirm the 2-nitrogen bond of the benzotriazole ring. The 2-nitrogen bond was confirmed also by Thermospray-Mass Spectroscopy analysis.

    [0033] The yellow dye forming DIR couplers of the present invention can be hydrophilic couplers (Fischer type couplers) having a water-solubilizing group, for example a carboxy group, a hydroxy group, a sulfo group, etc., or hydrophobic couplers. As methods for adding the couplers to an hydrophilic colloid solution or to a gelatino-silver halide pho­tographic emulsion or dispersing said couplers there­of, those methods conventionally known in the art can be applied. For example, hydrophobic couplers of the present invention can be dissolved in an high boiling water insoluble solvent and the resulting solution emulsified into an aqueous medium as described for example in US Pat. Nos. 2,304,939, 2,322,027, etc., or said hydrophobic couplers are dissolved in said high boiling water insoluble organic solvent in com­bination with low boiling organic solvents and the resulting solution emulsified into the aqueous medium as described for example in US. Pat. Nos. 2,801,170, 2,801,171, 2,949,360, etc.

    [0034] The photographic elements of the present inven­tion are preferably multilayer color elements com­prising a blue sensitive or sensitized silver halide emulsion layer associated with yellow dye-forming color couplers, a green sensitized silver halide emulsion layer associated with magenta dye-forming color couplers and a red sensitized silver halide emulsion layer associated with cyan dye-forming color couplers. Each layer can be comprised of a single emulsion layer or of multiple emulsion sub-layers sensitive to a given region of visible spectrum. When multilayer materials contain multiple blue, green or red sub-layers, there can be in any case relatively faster and relatively slower sub-layers.

    [0035] The silver halide emulsion used in this inven­tion may be a fine dispersion of silver chloride, silver bromide, silver chloro-bromide, silver iodo­bromide and silver chloro-iodo-bromide in a hydro­philic binder. As hydrophilic binder, any hydrophilic polymer of those conventionally used in photography can be advantageously employed including gelatin, a gelatin derivative such as acylated gelatin, graft gelatin, etc., albumin, gum arabic, agar agar, a cel­lulose derivative, such as hydroxyethylcellulose, carboxymethylcellulose, etc., a synthetic resin, such as polyvinyl alcohol, polyvinylpyrrolidone, polyacrylamide, etc. Preferred silver halides are silver iodo-bromide or silver iodo-bromo-chloride containing 1 to 20 mole silver iodide. The silver halide grains may have any crystal form such as cubi­cal, octahedral, tabular or a mixed crystal form. The silver halide can have a uniform grain size or a bro­ad grain size distribution. The size of the silver halide ranges from about 0.1 to about 5 µ. The silver halide emulsion can be prepared using a single-jet method, a double-jet method, or a combination of the­se methods or can be matured using, for instance, an ammonia method, a neutralization method, an acid method, etc. The emulsions which can be used in the present invention can be chemically and optically sensitized as described in Research Disclosure 17643, III and IV, December 1978; they can contain optical brighteners, antifogging agents and stabilizers, fil­tering and antihalo dyes, hardeners, coating aids, plasticizers and lubricants and other auxiliary sub­stances, as for instance described in Research Dis­closure 17643, V, VI, VIII, X, XI and XII, December 1978. The layers of the photographic emulsion and the layers of the photographic element con contain vari­ous colloids, alone or in combination, such as bind­ing materials, as for instance described in Research Disclosure 17643, IX, December 1978. The above de­scribed emulsions can be coated onto several support bases (cellulose triacetate, paper, resin-coated paper, polyester included) by adopting various methods, as described in Research Disclosure 17643, XV and XVII, December 1978. The light-sensitive silver halides contained in the photographic elements of the present invention after exposure can be processed to form a visible image by associating the silver halide with an aqueous alkaline medium in the presence of a developing agent contained in the medium or in the element. Processing formulations and techniques are described in Research Disclosure 17643, XIX, XX and XXI, December 1978.

    [0036] The present invention will be now illustrated in greater detail by reference to the following example.

    EXAMPLE 1



    [0037] A control multi layer negative color film (Film A) was made by coating a subbed cellulose triacetate support base with the following layers in the order:

    Layer 1.



    [0038] Least sensitive green-sensitive magenta dye forming silver halide emulsion layer comprising a blend of 40% by weight of a low speed silver bromo-­chloro-iodide gelatin emulsion (having 87.6% mole bromide, 5.2% mole chloride, 7.2% mole iodide and an average diameter of 0.40 µm) and 60% by weight of a medium speed silver bromoiodide gelatin emulsion (having 97.5% mole bromide, 2.5% mole iodide and an average diameter of 0.30 µm). The low and medium emulsions were both chemically sensitized with sul­phur and gold compounds, added with stabilizers, antifogging agents and green spectral sensitizing dyes. The layer was coated at a total silver coverage of 1.5 g/m², gelatin coverage of 1.6 g/m², 547 mg/m² of the 4-equivalent magenta dye forming coupler A, 56 mg/m² of the magenta dye forming DIR coupler B, 52 mg/m² of the yellow colored magenta forming coupler C and 104 mg/m² of the yellow colored magenta forming coupler D.

    Layer 2.



    [0039] More sensitive green sensitive magenta dye forming silver halide emulsion layer comprising a fast silver bromoiodide gelatin emulsion (having 89% mole bromide, 11% mole iodide and an average diameter of 0.62 µm) chemically sensitized with sulphur and gold compounds, added with stabilizers and anti-­fogging compounds and blue spectral sensitizing dyes. The layer was coated at silver coverage of 0.55 g/m², gelatin coverage of 0.7 g/m², 122 mg g/m² of the cou­pler A, 3 mg/m² of the magenta dye forming DIR cou­pler B, 6 mg/m² of the yellow colored magenta coupler C and 12 mg/m² of the yellow colored magenta forming coupler D.

    Layer 3.



    [0040] Interlayer comprising gelatin and a gelatin hardener coated at gelatin coverage of 0.8 g/m².

    Layer 4.



    [0041] Yellow colloidal silver filter layer comprising 0,08 g/m² of silver and 1.1 g/m² of gel­atin.

    Layer 5.



    [0042] Least sensitive blue sensitive yellow dye forming silver halide emulsion layer comprising a blend of 70% by weight of a low speed silver bromo­iodide gelatin emulsion (having 96.8% mole bromide, 3.2% mole iodide and an average diameter of 0.53 µm) and 30% by weight of a medium speed silver bromoiodi­de gelatin emulsion (having 96.8% mole bromide, 3.2% mole iodide and an average diameter of 0.78 µm). The low and medium emulsions were both chemically sensi­tized with sulphur and gold compounds, added with stabilizers, antifogging agents and blue spectral sensitizing dyes. The layer was coated at a total silver coverage of 0.55 g/m², gelatin coverage of 2.3 g/m², 857 mg/m² of the 2-equivalent yellow dye forming coupler E and 43 mg/m² of the yellow dye forming DIR coupler F.

    Layer 6.



    [0043] More sensitive blue sensitive yellow dye forming silver halide emulsion layer comprising a fast silver bromoiodide gelatin emulsion (having 92% mole bromide, 8% mole iodide and an average diameter of 1.02 µm) chemically sensitized with sulphur and gold compounds, added with stabilizers and anti-­fogging compounds and blue spectral sensitizing dyes. The layer was coated at silver coverage of 0.65 g/m², gelatin coverage of 1.3 g/m², 760 mg/m² of the 2-­equivalent yellow dye forming coupler E and 30 mg/m² of the yellow dye forming DIR coupler F.

    Layer 7.



    [0044] Protective gelatin overcoat comprising a gelatin hardener coated at 1,17 g/m² of gelatin.

    [0045] A multilayer color negative film (Film B) ac­cording to the present invention was made by coating the subbed cellulose triacetate support with the fol­lowing layers in the indicated order:

    Layer 1.



    [0046] Least sensitive green sensitive magenta forming layer (Layer 1 of Film A).

    Layer 2.



    [0047] More sensitive green sensitive magenta forming layer (Layer 2 of Film A).

    Layer 3.



    [0048] Interlayer (Layer 3 of Film A).

    Layer 4.



    [0049] Yellow colloidal silver filter layer (Layer 4 of Film A).

    Layer 5.



    [0050] Least sensitive blue sensitive yellow dye forming layer (layer 5 of Film A comprising 65 mg/m² of the yellow dye forming DIR coupler 22 in­stead of 43 mg/m² of the yellow dye forming DIR cou­pler F).

    Layer 6.



    [0051] More sensitive blue sensitive yellow dye forming layer (Layer 6 of Film A comprising 46 mg/m² of the yellow dye forming DIR coupler 22 in­stead of 30 mg/m² of the yellow dye forming DIR cou­pler F).

    Layer 7.



    [0052] Protective gelatin overcoat (Layer 7 of Film A).

    [0053] A control multilayer color negative film (Film C) was made by coating the subbed cellulose tri­acetate support with the following layers in the in­dicated order:

    Layer 1.



    [0054] Least sensitive green sensitive magenta forming layer (Layer 1 of Film A).

    Layer 2.



    [0055] More sensitive green sensitive magenta forming layer (Layer 2 of Film A).

    Layer 3.



    [0056] Interlayer (Layer 3 of Film A).

    Layer 4.



    [0057] Yellow colloidal silver filter layer (Layer 4 of Film A).

    Layer 5.



    [0058] Least sensitive blue sensitive yellow dye forming layer (layer 5 of Film A comprising 51 mg/m² of the yellow dye forming DIR coupler G instead of 43 mg/m² of the yellow dye forming DIR coupler F).

    Layer 6.



    [0059] More sensitive blue sensitive yellow dye forming layer (Layer 6 of Film A comprising 37 mg/m² of the yellow dye forming DIR coupler G instead of 30 mg/m² of the yellow dye forming DIR coupler F).

    Layer 7.



    [0060] Protective gelatin overcoat (Layer 7 of Film A).

    [0061] A control multilayer color negative film (Film D) was made similar to Film A but having no DIR cou­plers in the two blue sensitive yellow dye forming couplers.

    Coupler A:



    [0062] 


    Coupler B:



    [0063] 


    Coupler C:



    [0064] 


    Coupler D:



    [0065] 


    Coupler E:



    [0066] 


    Coupler F:



    [0067] 


    Coupler G:



    [0068] 



    [0069] Samples of each film were exposed to a light source having a color temperature of 5,500 Kelvin through a WRATTEN™ W99 filter and an optical step wedge (selective exposure). Other samples of each film were exposed as above but without using any fil­ter (white light exposure). All the exposed samples were developed in a standard type C41 process as de­scribed in British Journal of Photography, July 12, 1974, pp. 597-598. Contrasts of the obtained sensito­metric curves for selective exposures (gammaS) and white light exposures (gammaW) were measured in the low dye-density or toe region (B1) and in the high dye-density or shoulder region (B2) of each sensitometric curve. Table 1 reports the values of

    Table 1
    Film R
      (B1) (B2)
    A 11 12
    B 15 9
    C 15 15
    D 4 4


    [0070] The higher the R numbers, the better are the interimage effects. The film B comprising the DIR coupler (22) of the present invention shows improved interimage effects mainly in low density area of the sensitometric curve which means better vertical ef­fects and color reproduction.

    EXAMPLE 2



    [0071] A control multilayer negative color film (Film E) was made by coating a subbed cellulose triacetate support base with the following layers in the order:

    Layer 1.



    [0072] Least sensitive green-sensitive magenta dye forming silver halide emulsion layer comprising a blend of 40% by weight of a low speed silver bromo-­chloro-iodide gelatin emulsion (having 87.6% mole bromide, 5.2% mole chloride, 7.2% mole iodide and an average diameter of 0.40 µm) and 60% by weight of a medium speed silver bromoiodide gelatin emulsion (having 97.5% mole bromide, 2.5% mole iodide and an average diameter of 0.30 µm). The low and medium emulsions were both chemically sensitized with sul­phur and gold compounds, added with stabilizers, antifogging agents and green spectral sensitizing dyes. The layer was coated at a total silver coverage of 1.3 g/m², gelatin coverage of 1.4 g/m², 450 mg/m² of the 4-equivalent magenta dye forming coupler A, 33 mg/m² of the magenta dye forming DIR coupler B, 52 mg/m² of the yellow colored magenta forming coupler C and 104 mg/m² of the yellow colored magenta forming coupler D.

    Layer 2.



    [0073] More sensitive green sensitive magenta dye forming silver halide emulsion layer comprising a fast silver bromoiodide gelatin emulsion (having 89% mole bromide, 11% mole iodide and an average diameter of 0.62 µm) chemically sensitized with sulphur and gold compounds, added with stabilizers and anti-­fogging compounds and blue spectral sensitizing dyes. The layer was coated at silver coverage of 0.80 g/m², gelatin coverage of 1.0 g/m², 265 mg g/m² of the cou­pler A, 5 mg/m² of the magenta dye forming DIR cou­pler B, 9 mg/m² of the yellow colored magenta coupler C and 18 mg/m² of the yellow colored magenta forming coupler D.

    Layer 3.



    [0074] Interlayer comprising gelatin and a gelatin hardener coated at gelatin coverage of 0.8 g/m².

    Layer 4.



    [0075] Yellow colloidal silver filter layer comprising 0,08 g/m² of silver and 1.1 g/m² of gel­atin.

    Layer 5.



    [0076] Least sensitive blue sensitive yellow dye forming silver halide emulsion layer comprising a blend of 50% by weight of a low speed silver bromo-­chloro-iodide gelatin emulsion (having 87.6% mole bromide, 5.2% mole chloride, 7.2% mole iodide and an average diameter of 0.40 µm) and 50% by weight of a medium speed silver bromoiodide gelatin emulsion (having 97.5% mole bromide, 2.5% mole iodide and an average diameter of 0.30 µm). The low and medium emulsions were both chemically sensitized with sul­phur and gold compounds, added with stabilizers, antifogging agents and blue spectral sensitizing dyes. The layer was coated at a total silver coverage of 0.75 g/m², gelatin coverage of 1.80 g/m², 1,500 mg/m² of the 2-equivalent yellow dye forming coupler E.

    Layer 6.



    [0077] More sensitive blue sensitive yellow dye forming silver halide emulsion layer comprising a fast silver bromoiodide gelatin emulsion (having 92% mole bromide, 8% mole iodide and an average diameter of 1.02 µm) chemically sensitized with sulphur and gold compounds, added with stabilizers and anti-­fogging compounds and blue spectral sensitizing dyes. The layer was coated at silver coverage of 0.55 g/m², gelatin coverage of 1.1 g/m², 210 mg/m² of the 2-­equivalent yellow dye forming coupler E.

    Layer 7.



    [0078] Protective gelatin overcoat comprising a gelatin hardener coated at 1,17 g/m² of gelatin.

    [0079] A second control multilayer negative color film (Film F) was made similar to Film E but having in the least sensitive blue sensitive yellow dye forming layer (Layer 5) 114 mg/m² of the yellow dye forming DIR coupler H.

    [0080] A multilayer color negative film (Film G) ac­cording to the present invention was made by coating the subbed cellulose triacetate support with the fol­lowing layers in the indicated order:

    Layer 1.



    [0081] Least sensitive green sensitive magenta forming layer (Layer 1 of Film E).

    Layer 2.



    [0082] More sensitive green sensitive magenta forming layer (Layer 2 of Film E).

    Layer 3.



    [0083] Interlayer (Layer 3 of Film E).

    Layer 4.



    [0084] Yellow colloidal silver filter layer (Layer 4 of Film E).

    Layer 5.



    [0085] Least sensitive blue sensitive yellow dye forming layer (Layer 5 of Film E) comprising 88 mg/m² of the yellow dye forming DIR coupler 1.

    Layer 6.



    [0086] More sensitive blue sensitive yellow dye forming layer (Layer 6 of Film E).

    Layer 7.



    [0087] Protective gelatin overcoat (Layer 7 of Film E).

    [0088] A second multilayer color negative film (Film H) according to the present invention was made by coat­ing the subbed cellulose triacetate support with the following layers in the indicated order:

    Layer 1.



    [0089] Least sensitive green sensitive magenta forming layer (Layer 1 of Film E).

    Layer 2.



    [0090] More sensitive green sensitive magenta forming layer (Layer 2 of Film E).

    Layer 3.



    [0091] Interlayer (Layer 3 of Film E).

    Layer 4.



    [0092] Yellow colloidal silver filter layer (Layer 4 of Film E).

    Layer 5.



    [0093] Least sensitive blue sensitive yellow dye forming layer (Layer 5 of Film E) comprising 120 mg/m² of the yellow dye forming DIR coupler 25.

    Layer 6.



    [0094] More sensitive blue sensitive yellow dye forming layer (Layer 6 of Film E).

    Layer 7.



    [0095] Protective gelatin overcoat (Layer 7 of Film E).

    Coupler H:



    [0096] 



    [0097] Samples of each film were exposed and developed as described in Example 1. Table 2 reports the values of speed and contrast B1.
    Table 2
    Film Speed B1
    E 100 9
    F 42 24
    G 91 16
    H 88 24


    [0098] Films G and H comprising the DIR couplers (1) and (25) of the present invention show less speed decrease in comparison with Film F comprising the conventional DIR coupler H and improved interimage effects in comparison with Film E having no DIR com­pound in the blue sensitive layers.

    EXAMPLE 3



    [0099] A control multilayer negative color film (Film I) was made similar to Film E of Example 2.

    [0100] A second control multilayer negative color film (Film L) was made by coating the subbed cellulose triacetate support with the following layers in the indicated order:

    Layer 1.



    [0101] Least sensitive green sensitive magenta forming layer (Layer 1 of Film E of Example 2).

    Layer 2.



    [0102] More sensitive green sensitive magenta forming layer (Layer 2 of Film E of Example 2).

    Layer 3.



    [0103] Interlayer (Layer 3 of Film E of Example 2).

    Layer 4.



    [0104] Yellow colloidal silver filter layer (Layer 4 of Film E of Example 2).

    Layer 5.



    [0105] Least sensitive blue sensitive yellow dye forming layer (Layer 5 of Film E of Example 2) comprising 120 mg/m² of the yellow dye forming DIR coupler I.

    Layer 6.



    [0106] More sensitive blue sensitive yellow dye forming layer (Layer 6 of Film E of Example 2).

    Layer 7.



    [0107] Protective gelatin overcoat (Layer 7 of Film E of Example 2).

    [0108] A multilayer color negative film (Film M) ac­cording to the present invention was made similar to Film E of Example 2, but having in the least sensi­tive blue sensitive yellow dye forming layer (Layer 5) 118 mg/m² of the yellow dye forming DIR coupler 29.

    Coupler I:



    [0109] 



    [0110] Samples of each film were exposed and developed as described in Example 1. Table 3 reports the values of speed, contrast B1 and R.M.S. granularity (R.M.S. granularity is a measure of diffuse granularity, as described by H.C. Schmitt and J.H. Altman, "Method of Measuring Diffuse RMS Granularity", Applied Optics, vol. 9, pages 871 to 874, April 1970).
    Table 3
    Film Speed B1 R.M.S. Granularity
    I 100 9 6.0
    L 88 27 4.0
    M 88 30 3.0


    [0111] Film M comprising DIR coupler 29 of the present invention shows better interimage effects and granu­larity in comparison with Film L comprising the con­ventional DIR coupler I at a comparable speed de­crease.

    EXAMPLE 4



    [0112] A control multilayer color negative film (Film N) was made similar to Film E of Example 2.

    [0113] A multilayer color negative film (Film O) ac­cording to the present invention was made similar to Film E of Example 2 but having in the least sensitive blue sensitive yellow dye forming layer (Layer 5) 141 mg/m² of the yellow dye forming DIR coupler 23.

    [0114] A second multilayer color negative film (Film P) according to the present invention was made similar to Film E of Example 2 but having in the least sensitive blue sensitive yellow dye forming layer (Layer 5) 136 mg/m² of the yellow dye forming DIR coupler 28.

    [0115] A third multilayer color negative film (Film Q) according to the present invention was made similar to Film E of Example 2 but having in the least sensi­tive blue sensitive yellow dye forming layer (Layer 5) 118 mg/m² of the yellow dye forming DIR coupler 27.

    [0116] A fourth multilayer color negative film (Film R) according to the present invention was made similar to Film E of Example 2 but having in the least sensi­tive blue sensitive yellow dye forming layer (Layer 5) 115 mg/m² of the yellow dye forming DIR coupler 24.

    [0117] Samples of each film were exposed and developed as described in Example 1. Table 4 reports the values of speed, contrast B1 and R.M.S. Granularity.
    Table 4
    Film Speed B1 R.M.S. Granularity
    N 100 9 6.0
    O 66 17 3.8
    P 75 17 3.8
    Q 91 16 5.0
    R 93 11 5.0



    Claims

    1. A silver halide color photographic light-­sensitive material which comprises a support having coated thereon at least one silver halide emulsion layer containing a diketomethylene yellow dye forming coupler having, bonded directly or through a connect­ing group to the coupling active position, a group which provides a compound having a development inhib­iting property when the group is released from the coupler active position upon the color development reaction, wherein said group is a 4,7-dihalogen-2-­benzotriazolyl group.
     
    2. The silver halide color photographic light-sensitive material of claim 1, wherein said yellow dye forming coupler is represented by the general formula (I)

    wherein COUP represents a yellow dye forming coupler residue (with an available bond at the reactive position) which is bonded, directly or through a connecting group, to the 2-nitrogen atom, R₁ and R₂ may be the same or different and each represents a halogen atom, L represents a connecting group and n represents 0 or 1.
     
    3. The silver halide color photographic light-­sensitive material of claim 1, wherein said yellow dye forming coupler is represented by the general formula (II)

    wherein COUP represents a yellow dye forming coupler residue, R₁ and R₂ each represents a halogen atom and R₃ and R₄ each represent a hydrogen atom, a halogen atom,an amino group, an alkyl group, an alkoxy group, an hydroxy group, a cyano group, an aryloxy group, an acyloxy group, an acyl group, an alkoxycarbonyl group, an aryloxycarbonyl group, an acylamino group, an alkylsulphonyl group, an arylsulphonyl group, an alkoxysulphonyl group, an aryloxysulphonyl group or an ureido group.
     
    4. The silver halide color photographic light-­sensitive material of claim 1, wherein said yellow dye forming coupler is represented by the general formula (III)

    wherein
    R₁ and R₂ each represents a halogen atom,
    R₃ and R₄ each represents a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above,
    R₅ represents an alkyl group or an aryl group,
    R₆ represents an halogen atom, an alkoxy group or an alkyl group and
    Ball is an hydrophobic ballasting group.
     
    5. The silver halide color photographic light-­sensitive material of claim 1, wherein said yellow dye forming coupler is represented by the general formula (IV) or (V)

    wherein
    R₁ and R₂ each represents a halogen atom,
    R₃ and R₄ each represents a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above,
    R₇ represents a branched chain alkyl group,
    R₈ represents an alkyl group, a phenoxyalkyl group, an alkoxyphenyl group or an aralkyl group.
     
    6. The silver halide color photographic light-­sensitive material of claim 1, wherein said yellow dye forming coupler is represented by the general formula (VI)

    wherein
    R₁ and R₂ each represents a halogen atom,
    R₃ and R₄ each represents a hydrogen atom, a halogen atom or a substituent as defined for formula (I) above,
    R₉ represents an alkyl group, an aryl group or a -NR₁₁R₁₂ group wherein R₁₁ represents a hydrogen atom or an alkyl group and R₁₂ represents an alkyl group or an aryl group, and
    R₁₀ represents an alkyl group or an aryl group.
     
    7. The silver halide color photographic light-­sensitive material of claim 1, wherein said yellow dye forming coupler is capable of releasing the 4,7-­dihalogen-2-benzotriazolyl group in a controllable timing.
     
    8. The silver halide color photographic light-­sensitive material of claim 7, wherein said yellow dye forming coupler is represented by the general formula (VII)

    wherein COUP represents a yellow dye forming coupler residue, TIME is a timing group joining the coupler group to the 4,7-dihalogen-2-benzotriazolyl group,R₁ and R₂ each represents a halogen atom and R₃ and R₄ each represent a hydrogen atom, a halogen atom or a substituent as defined for formula (II) above.